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Algorithms and Applications for Academic Search, Recommendation and Quantitative Association Rule Mining, Emmanouil Amolochitis


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Автор: Emmanouil Amolochitis   (Иммануил Амолочитис)
Название:  Algorithms and Applications for Academic Search, Recommendation and Quantitative Association Rule Mining
Перевод названия: Иммануил Амолочитис: Алгоритмы и приложения для академического поиска, рекомендации и количественной
ISBN: 9788793609648
Издательство: Taylor&Francis
Классификация:





ISBN-10: 8793609647
Обложка/Формат: Hardcover
Страницы: 150
Вес: 0.36 кг.
Дата издания: 30.01.2018
Серия: River publishers series in automation, control and robotics
Язык: English
Размер: 234 x 156 x 10
Читательская аудитория: Professional & vocational
Ключевые слова: Automatic control engineering,Information technology: general issues,Internet searching,Algorithms & data structures, COMPUTERS / Data Processing,TECHNOLOGY & ENGINEERING / Automation
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Поставляется из: Европейский союз
Описание: Algorithms and Applications for Academic Search, Recommendation and Quantitative Association Rule Mining presents novel algorithms for academic search, recommendation and association rule mining that have been developed and optimized for different commercial as well as academic purpose systems. Along with the design and implementation of algorithms, a major part of the work presented in the book involves the development of new systems both for commercial as well as for academic use. In the first part of the book the author introduces a novel hierarchical heuristic scheme for re-ranking academic publications retrieved from standard digital libraries. The scheme is based on the hierarchical combination of a custom implementation of the term frequency heuristic, a time-depreciated citation score and a graph-theoretic computed score that relates the paper’s index terms with each other. In order to evaluate the performance of the introduced algorithms, a meta-search engine has been designed and developed that submits user queries to standard digital repositories of academic publications and re-ranks the top-n results using the introduced hierarchical heuristic scheme. In the second part of the book the design of novel recommendation algorithms with application in different types of e-commerce systems are described. The newly introduced algorithms are a part of a developed Movie Recommendation system, the first such system to be commercially deployed in Greece by a major Triple Play services provider. The initial version of the system uses a novel hybrid recommender (user, item and content based) and provides daily recommendations to all active subscribers of the provider (currently more than 30,000). The recommenders that we are presenting are hybrid by nature, using an ensemble configuration of different content, user as well as item-based recommenders in order to provide more accurate recommendation results.The final part of the book presents the design of a quantitative association rule mining algorithm. Quantitative association rules refer to a special type of association rules of the form that antecedent implies consequent consisting of a set of numerical or quantitative attributes. The introduced mining algorithm processes a specific number of user histories in order to generate a set of association rules with a minimally required support and confidence value. The generated rules show strong relationships that exist between the consequent and the antecedent of each rule, representing different items that have been consumed at specific price levels. This research book will be of appeal to researchers, graduate students, professionals, engineers and computer programmers.


Personalized Task Recommendation in Crowdsourcing Systems

Автор: David Geiger
Название: Personalized Task Recommendation in Crowdsourcing Systems
ISBN: 3319222902 ISBN-13(EAN): 9783319222905
Издательство: Springer
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Цена: 11179.00 р.
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Описание: This book examines the principles of and advances in personalized task recommendation in crowdsourcing systems, with the aim of improving their overall efficiency.

Link Mining: Models, Algorithms, and Applications

Автор: Philip S. Yu; Jiawei Han; Christos Faloutsos
Название: Link Mining: Models, Algorithms, and Applications
ISBN: 1493901478 ISBN-13(EAN): 9781493901470
Издательство: Springer
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Цена: 28732.00 р.
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Описание: This book offers detailed surveys and systematic discussion of models, algorithms and applications for link mining, focusing on theory and technique, and related applications: text mining, social network analysis, collaborative filtering and bioinformatics.

Recommendation and Search in Social Networks

Автор: ?zg?r Ulusoy; Abdullah Uz Tansel; Erol Arkun
Название: Recommendation and Search in Social Networks
ISBN: 3319143786 ISBN-13(EAN): 9783319143781
Издательство: Springer
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Цена: 11878.00 р.
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Описание: This edited volume offers a clear in-depth overview of research covering a variety of issues in social search and recommendation systems.

Point-of-Interest Recommendation in Location-Based Social Networks

Автор: Zhao
Название: Point-of-Interest Recommendation in Location-Based Social Networks
ISBN: 9811313482 ISBN-13(EAN): 9789811313486
Издательство: Springer
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Цена: 6986.00 р.
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Описание: This book systematically introduces Point-of-interest (POI) recommendations in Location-based Social Networks (LBSNs). Lastly, the book discusses future research directions in this area. This book is intended for professionals involved in POI recommendation and graduate students working on problems related to location-based services.

Personalized Task Recommendation in Crowdsourcing Systems

Автор: David Geiger
Название: Personalized Task Recommendation in Crowdsourcing Systems
ISBN: 3319370588 ISBN-13(EAN): 9783319370583
Издательство: Springer
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Цена: 11179.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book examines the principles of and advances in personalized task recommendation in crowdsourcing systems, with the aim of improving their overall efficiency.

Spatio-Temporal Recommendation in Social Media

Автор: Hongzhi Yin; Bin Cui
Название: Spatio-Temporal Recommendation in Social Media
ISBN: 9811007470 ISBN-13(EAN): 9789811007477
Издательство: Springer
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Цена: 6986.00 р.
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Описание: This book covers the major fundamentals of and the latest research on next-generation spatio-temporal recommendation systems in social media.

Quantitative Analysis for System Applications: Data Science and Analytics Tools and Techniques

Автор: Daniel A McGrath
Название: Quantitative Analysis for System Applications: Data Science and Analytics Tools and Techniques
ISBN: 1634624238 ISBN-13(EAN): 9781634624237
Издательство: Gazelle Book Services
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Цена: 10723.00 р.
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Описание:

As data holdings get bigger and questions get harder, data scientists and analysts must focus on the systems, the tools and techniques, and the disciplined process to get the correct answer, quickly Whether you work within industry or government, this book will provide you with a foundation to successfully and confidently process large amounts of quantitative data.

Here are just a dozen of the many questions answered within these pages:

  1. What does quantitative analysis of a system really mean?
  2. What is a system?
  3. What are big data and analystics?
  4. How do you know your numbers are good?
  5. What will the future data science environment look like?
  6. How do you determine data provenance?
  7. How do you gather and process information, and then organize, store, and synthesize it?
  8. How does an organization implement data analytics?
  9. Do you really need to think like a Chief Information Officer?
  10. What is the best way to protect data?
  11. What makes a good dashboard?
  12. What is the relationship between eating ice cream and getting attacked by a shark?

The nine chapters in this book are arranged in three parts that address systems concepts in general, tools and techniques, and future trend topics. Systems concepts include contrasting open and closed systems, performing data mining and big data analysis, and gauging data quality. Tools and techniques include analyzing both continuous and discrete data, applying probability basics, and practicing quantitative analysis such as descriptive and inferential statistics. Future trends include leveraging the Internet of Everything, modeling Artificial Intelligence, and establishing a Data Analytics Support Office (DASO).

Many examples are included that were generated using common software, such as Excel, Minitab, Tableau, SAS, and Crystal Ball. While words are good, examples can sometimes be a better teaching tool. For each example included, data files can be found on the companion website. Many of the data sets are tied to the global economy because they use data from shipping ports, air freight hubs, largest cities, and soccer teams. The appendices contain more detailed analysis including the 10 T's for Data Mining, Million Row Data Audit (MRDA) Processes, Analysis of Rainfall, and Simulation Models for Evaluating Traffic Flow.


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